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A convex hull approach for the reliability-based design optimization of nonlinear transient dynamic problems

机译:基于凸壳法的非线性瞬态动力问题基于可靠性的设计优化

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摘要

Nonlinear transient dynamic problems exhibit structural responses that might be discontinuous due to numerous critical points. The discontinuous behavior hinders classical gradient-based or response surface-based optimization. However, these discontinuities help to classify the system's responses and identify regions of the design space corresponding to distinct dynamic behaviors. In this paper, data mining techniques are employed to group the responses into clusters. The regions of the design space corresponding to the clusters of unwanted behaviors are delimited with convex hulls. This allows an explicit definition of the boundaries of the failure region in terms of the design variables. In addition, the identification of response clusters, within which the responses might be considered continuous, enables the use of traditional response surface approximation for optimization. The proposed approach is applied to the reliability-based design of a tube impacting a rigid wall, which is optimized for a prescribed dynamic behavior.
机译:非线性瞬态动力学问题表现出的结构响应由于许多关键点而可能是不连续的。不连续的行为阻碍了经典的基于梯度或基于响应面的优化。但是,这些不连续性有助于对系统的响应进行分类,并确定设计空间中与不同动态行为相对应的区域。在本文中,数据挖掘技术被用于将响应分组到群集中。设计空间中与不良行为簇相对应的区域由凸包界定。这样就可以根据设计变量明确定义故障区域的边界。此外,对响应簇的识别(在其中可以将响应视为连续的)可以使用传统的响应面近似进行优化。所提出的方法应用于撞击刚性壁的管的基于可靠性的设计,该管针对指定的动态行为进行了优化。

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